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Macroecological scale effects of biodiversity on ecosystem functions under environmental change

机译:环境变化下生物多样性对生态系统功能的宏观生态尺度效应

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摘要

Conserving different spatial and temporal dimensions of biological diversity is considered necessary for maintaining ecosystem functions under predicted global change scenarios. Recent work has shifted the focus from spatially local (α‐diversity) to macroecological scales (β‐ and γ‐diversity), emphasizing links between macroecological biodiversity and ecosystem functions (MB–EF relationships). However, before the outcomes of MB–EF analyses can be useful to real‐world decisions, empirical modeling needs to be developed for natural ecosystems, incorporating a broader range of data inputs, environmental change scenarios, underlying mechanisms, and predictions. We outline the key conceptual and technical challenges currently faced in developing such models and in testing and calibrating the relationships assumed in these models using data from real ecosystems. These challenges are explored in relation to two potential MB–EF mechanisms: “macroecological complementarity” and “spatiotemporal compensation.” Several regions have been sufficiently well studied over space and time to robustly test these mechanisms by combining cutting‐edge spatiotemporal methods with remotely sensed data, including plant community data sets in Australia, Europe, and North America. Assessing empirical MB–EF relationships at broad spatiotemporal scales will be crucial in ensuring these macroecological processes can be adequately considered in the management of biodiversity and ecosystem functions under global change.
机译:在预测的全球变化情况下,维持生物多样性的不同时空维度被认为是维持生态系统功能所必需的。最近的工作将重点从空间局部(α-多样性)转移到了宏观生态尺度(β-和γ-多样性),强调了宏观生态多样性与生态系统功能(MB-EF关系)之间的联系。但是,在MB-EF分析的结果可用于现实世界的决策之前,需要为自然生态系统建立经验模型,并纳入更广泛的数据输入,环境变化情景,潜在机制和预测。我们概述了在开发此类模型以及使用来自真实生态系统的数据测试和校准这些模型中假设的关系时当前面临的主要概念和技术挑战。针对两个潜在的MB-EF机制探讨了这些挑战:“宏观生态互补性”和“时空补偿”。通过将前沿的时空方法与遥感数据(包括澳大利亚,欧洲和北美洲的植物群落数据集)相结合,已在空间和时间上对几个区域进行了充分研究,以对这些机制进行有力的测试。在广泛的时空尺度上评估经验性MB-EF关系对于确保在全球变化下的生物多样性和生态系统功能管理中能够充分考虑这些宏观生态过程至关重要。

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